Heat dissipating structure and semiconductor package with the same
A heat dissipating structure and a semiconductor package with the same are proposed. A substrate is used to accommodate at least one chip thereon, and the chip is electrically connected to the substrate. A heat dissipating structure having a flat portion and a support portion is mount on the substrate via the support portion by means of an adhesive. At least one groove is formed on the support portion and at least one air vent is formed around the groove to allow the groove to communicate with the outside via the air vent, such that the adhesive is allowed to fill the groove to expel air from the groove to the atmosphere through the air vent, thereby preventing the air from trapped in the groove.
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The present invention relates to semiconductor packages, and more particularly, to a semiconductor package with a heat dissipating structure that can be firmly attached to a chip carrier so as to improve the adhesion reliability between the heat dissipating structure and the chip carrier.
BACKGROUND OF THE INVENTIONFlip-chip ball grid array (FCBGA) semiconductor package combines flip-chip and ball-grid-array structures, wherein at least one semiconductor chip is incorporated in a flip-chip manner that an active surface of the chip is electrically connected to a side of a substrate via a plurality of conductive bumps, and a plurality of solder balls are formed on an opposite side of the substrate to serve as input/output (I/O) connections. This FCBGA package desirably has a reduced size and improved electrical performance as not requiring the use of bonding wires, thereby reducing the resistance and preventing signal degradation during transmission, such that the FCBGA package becomes one of the most popular package technologies in the next generation.
Due to the above advantageous characteristics such as the reduced size and improved performance, the FCBGA package is widely used for packaging highly integrated semiconductor chips. Since such highly-integrated chips usually produce a large amount of heat during the high-frequency operation thereof, how to effectively dissipate heat plays a key role in determining the lifetime of the chips and the yield of the fabricated packages.
In order to improve the heat dissipating efficiency for the FCBGA package, it is common to attach at least one embedded heat spreader to the flip chip mounted on the chip carrier such as substrate during package fabrication. This allows heat generated from the flip chip during operation to be transmitted through a non-active surface of the chip to the heat spreader and dissipated, such that the heat does not pass through a poor thermally conductive encapsulation body used for encapsulating the chip, and thus the heat dissipating efficiency of the package is improved.
U.S. Pat. No. 5,311,402 discloses a semiconductor package with a heat spreader. As shown in
Accordingly, there is developed an alternative method to form grooves on the support portions of the heat spreader instead of on the substrate. As shown in a semiconductor package of
Forming grooves 57 on the support portions 54b of the heat spreader 54 for receiving the adhesive 55 desirably provides an anchoring effect to enhance the bonding strength between the heat spreader 54 and the substrate 50. However, the adhesive 55 filled into the grooves 57 seals the grooves 57, and makes air trapped in the groove 57 and not able to be dissipated. As a result, during temperature cycles of subsequent fabrication processes, the air trapped in the grooves 57 would cause a popcorn effect that reduces the adhesion reliability between the heat spreader 54 and the substrate 50.
Moreover, it is difficult to observe from the appearance and examine the amount of adhesive filled in the grooves. If an excess amount of adhesive is applied, the adhesive would contaminate the substrate. On the contrary, if the amount of adhesive used is insufficient, it results in air trapped in the grooves and causes the popcorn effect.
Therefore, the problem to be solved here is to provide a heat dissipating structure for use in a semiconductor package, which allows an amount of adhesive used for the heat dissipating structure to be determined from the appearance of the heat dissipating structure.
SUMMARY OF THE INVENTIONIn light of the above drawbacks of the prior arts, a primary objective of the present invention is to provide a heat dissipating structure and a semiconductor package with the same, allowing air in one or more grooves on a support portion of the heat dissipating structure to be dissipated so as to improve the adhesion reliability between the heat dissipating structure and a substrate on which the heat dissipating structure is mounted.
Another objective of the present invention is to provide a heat dissipating structure and a semiconductor package with the same, which can prevent air from trapped in one or more grooves formed on a support portion of the heat dissipating structure thereby assuring the reliability of fabrication processes of the semiconductor package, and the semiconductor package is cost-effective to fabricate.
Still another objective of the present invention is to provide a heat dissipating structure and a semiconductor package with the same, allowing an amount of adhesive applied for attaching the heat dissipating structure to a substrate in the semiconductor package to be accurately examined.
A further objective of the present invention is to provide a heat dissipating structure and a semiconductor package with the same, wherein a support portion of the heat dissipating structure is formed with one or more grooves and at least one air vent for dissipating air in the grooves, so as to improve the adhesion reliability between the heat dissipating structure and a substrate on which the heat dissipating structure is mounted.
In order to achieve the foregoing and other objectives, the present invention provides a semiconductor package with a heat dissipating structure, comprising: a substrate; at least one semiconductor chip mounted on and electrically connected to the substrate; a heat dissipating structure having a flat portion, and at least one support portion integrally formed with the flat portion and for supporting the flat portion above the semiconductor chip, wherein at least one groove is formed on the support portion at a position to be in contact with the substrate, and at least one air vent is formed around the groove, allowing the groove to communicate with the outside via the air vent; and an adhesive applied in the groove and air vent, for attaching the heat dissipating structure to the substrate.
The groove comprises a single ring-shaped recess or a plurality of concave openings. The groove has a cross-sectional shape depending on a stamping tool used, which can be a square, V shape, semicircle or other shapes.
The air vents are formed transversely across the groove formed on the support portion of the heat dissipating structure and provide an external connection pathway to allow the groove to communicate with the outside via the air vents, such that when the adhesive is filled in the groove, air in the groove can be expelled by the adhesive to the outside via the air vents. This prevents the air from trapped in the groove and prevents the occurrence of a popcorn effect caused by the trapped air during a temperature cycle of subsequent fabrication processes; the popcorn effect would undesirably damage the adhesion reliability between the heat dissipating structure and the substrate. In addition, further by provision of the air vents, packaging operators can easily examine whether an appropriate amount of the adhesive is used by observing if the adhesive flashes to the exits of air vents. In other words, if there is flash of the adhesive observed outside the air vents, it indicates that an excessive amount of the adhesive is applied. This thereby allows the used amount of the adhesive to be accurately controlled.
BRIEF DESCRIPTION OF THE DRAWINGSThe present invention can be more fully understood by reading the following detailed description of the preferred embodiments, with reference made to the accompanying drawings, wherein:
First, referring to
The heat dissipating structure 14 can be made of copper coated with nickel. The beat dissipating structure 14 comprises a flat portion 14a, and a support portion 14b integrally formed with the flat portion 14a and for supporting the flat portion 14a above the chip 12. The flat portion 14a has a thickness of approximately 20-40 mils, and the support portion 14b has a height of approximately 10-40 mils, wherein the height of the support portion 14b depends on the thickness of the chip or the number of chips stacked together. Further, the flat portion 14a of the heat dissipating structure 14 can be directly attached to the chip 12 via a thermally conductive adhesive 19, such that heat generated from the chip 12 can be easily transmitted to the heat dissipating structure 14 via the thermally conductive adhesive 19 and dissipated.
After a baking process is performed to cure the adhesive 15, as shown in
On the other hand, the groove 17 shown in
However, it should be understood that the cross-sectional shape of the groove 17 is not limited to the above square shape. As shown in
Thus, the air vents transversely across the groove formed on the support portion of the heat dissipating structure provide an external connection pathway to allow the groove to communicate with the outside via the air vents, such that when the adhesive is filled in the groove, air in the groove can be expelled by the adhesive to the outside via the air vents. This prevents the air from trapped in the groove and prevents the occurrence of a popcorn effect caused by the trapped air during temperature cycles of subsequent fabrication processes; the popcorn effect would undesirably damage the adhesion reliability between the heat dissipating structure and the substrate. In addition, further by provision of the air vents, packaging operators can easily examine whether an appropriate amount of the adhesive is used by observing if the adhesive flashes to the exits of air vents. In other words, if there is flash of the adhesive observed outside the air vents, it indicates that an excessive amount of the adhesive is applied. This thereby allows the used amount of the adhesive to be accurately controlled.
Furthermore, with provision of the groove and air vents on the heat dissipating structure, the adhesive after being cured can provide anchoring and locking effects for the heat dissipating structure to further enhance the adhesion reliability between the heat dissipating structure and the substrate and prevent the heat dissipating structure from delaminated from the substrate due to external shock or mismatch in coefficient of thermal expansion (CTE) between materials respective for making the heat dissipating structure and the substrate.
The invention has been described using exemplary preferred embodiments. However, it is to be understood that the scope of the invention is not limited to the disclosed embodiments. On the contrary, it is intended to cover various modifications and similar arrangements. The scope of the claims, therefore, should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Claims
1. A semiconductor package with a heat dissipating structure, comprising:
- a substrate;
- at least one semiconductor chip mounted on and electrically connected to the substrate;
- a heat dissipating structure having a flat portion, and at least one support portion integrally formed with the flat portion and for supporting the flat portion above the semiconductor chip, wherein at least one groove is formed on the support portion at a position to be in contact with the substrate, and at least one air vent is formed around the groove, allowing the groove to communicate with the outside via the air vent; and
- an adhesive applied in the groove and air vent, for attaching the heat dissipating structure to the substrate.
2. The semiconductor package of claim 1, wherein the semiconductor package is a flip-chip ball grid array (FCBGA) package.
3. The semiconductor package of claim 1, wherein the groove structure comprises a ring-shaped recess.
4. The semiconductor package of claim 1, wherein the groove structure comprises a plurality of concave openings.
5. The semiconductor package of claim 1, wherein the groove has a cross-sectional shape of a square.
6. The semiconductor package of claim 1, wherein the groove has a cross-sectional shape of a V shape.
7. The semiconductor package of claim 1, wherein the groove has a cross-sectional shape of a semicircle.
8. The semiconductor package of claim 1, wherein the groove is stamped with a punch.
9. The semiconductor package of claim 1, wherein the air vent is formed transversely across the groove.
10. The semiconductor package of claim 1, wherein the adhesive is a silver paste.
11. A heat dissipating structure for a semiconductor package, comprising:
- a flat portion; and
- at least one support portion integrally formed with the flat portion and for supporting the flat portion above a chip incorporated in the semiconductor package, wherein at least one groove is formed on the support portion, and at least one air vent is formed around the groove, allowing the groove to communicate with the outside via the air vent.
12. The heat dissipating structure of claim 11, wherein the groove comprises a ring-shaped recess.
13. The heat dissipating structure of claim 11, wherein the groove comprises a plurality of concave openings.
14. The heat dissipating structure of claim 11, wherein the groove has a cross-sectional shape of a square.
15. The heat dissipating structure of claim 11, wherein the groove has a cross-sectional shape of a V shape.
16. The heat dissipating structure of claim 11, wherein the groove has a cross-sectional shape of a semicircle.
17. The heat dissipating structure of claim 11, wherein the groove is formed by stamping with a punch.
18. The heat dissipating structure of claim 1, wherein the air vent is formed transversely across the groove.
Type: Application
Filed: May 21, 2004
Publication Date: Mar 17, 2005
Patent Grant number: 7203072
Applicant:
Inventors: Chin-Te Chen (Taichung Hsien), Chang-Fu Lin (Taichung Hsien)
Application Number: 10/851,288